[0001] A reformer producing hydrogen-containing reformate gas, such as for use in a fuel
cell power plant, from natural gas feedstock having high nitrogen content, produces
only small amounts of ammonia due to gradations of nickel content of catalyst bed
as a function of position in the catalyst bed and therefore of temperature of the
reaction.
Background Art
[0002] Natural gas feedstocks from various parts of the world have differing nitrogen content.
Reforming natural gas to provide hydrogen-rich reformate gas for use, for instance,
in a fuel cell power plant must be done with relative efficiency. A relatively inexpensive
and effective catalyst for converting the hydrocarbons in natural gas to a hydrogen-rich
reformate gas is nickel. However, the nickel catalysts promote an undesirable side
reaction, combining product hydrogen with nitrogen present in the natural gas, to
form ammonia: 0.5 N2 + 1.5 H2 = NH3. The ammonia reacts with both phosphoric acid
fuel cells and proton exchange membrane fuel cells to cause significant decay in fuel
cell performance. The problem is sufficiently serious to require the use of ammonia
scrubbers between the reformer and the fuel cell power plant, in some cases.
[0003] While rhodium will promote production of hydrogen-rich reformate without producing
any ammonia, the cost of rhodium is excessive, being many thousands of US dollars
per ounce at this writing.
[0004] US 3 467 506 A discloses a process for catalytic reforming of liquid petroleum hydrocarbons with
steam under high pressure in two stages. In the first stage a polymetallic catalyst
including nickel is used, and in the second stage a catalyst having a low nickel content
is used. The polymetallic catalyst of the first stage is specific to a methane-forming
reaction, and the second catalyst is a conventional catalyst for natural gas reforming
with steam.
[0005] US 2007/0227070 A1 discloses a catalytic partial oxidation reformer for producing fuel for fuel cells.
The staged reformer system comprises a first stage including a nickel catalyst, and
additional stages including noble metal catalysts. The noble metal loading is different
in successive stages, while there is only one stage, i.e. the first stage, comprising
a nickel catalyst.
[0006] US 1 957 743 A discloses a process of producing gases containing hydrogen which comprises subjecting
a gas comprising gaseous hydrocarbons to incomplete combustion, adding steam and then
substantially removing the hydrocarbons contained in the gases by passing the mixture
successively over two different catalysts of which the second has a higher activity
than the first. Both catalysts may contain nickel as the catalytically active material.
[0007] GB 1 195 428 A discloses a process for the production of synthesis gas by catalytic cracking of
hydrocarbons having a carbon number of from C
2 to C
30 using steam, wherein the cracking is carried out in two successive stages. In the
first stage a gas rich in methane is prepared in the presence of a catalyst which
contains 25 to 55 % by weight of nickel and/or cobalt, and the gas produced in the
first stage is cracked in the second stage to a gas rich in hydrogen in the presence
of a catalyst containing 15 to 55 % by weight of nickel and/or cobalt.
[0008] US 3 312 634 A discloses a process for catalytic steam reforming of a normally liquid naphtha which
comprises vaporizing the liquid naphtha, combining the vaporized naphtha with steam
and preheated air, and contacting the resulting mixed process stream with a first
catalyst bed consisting entirely of metallic nickel particles without a carrier, and
then with a second catalyst bed comprising active hydrocarbon reforming catalyst,
for example nickel oxide on a suitable carrier. The synthesis gas obtained by this
process is intended for ammonia manufacture.
[0009] WO 2005/099885 A1 discloses a method for generating hydrogen by steam reforming of hydrocarbon gas.
The method employs a plurality of catalysts within a reactor chamber to form a staged
catalyst medium, the staged catalyst medium comprising a series of distinct zones,
each zone comprising a distinct catalyst or combination thereof. An exemplary first
catalyst comprises from 1 to 15% nickel, and an exemplary second catalyst comprises
from 15 to 25% nickel.
Summary
[0010] Subject matter of the present invention is a method of steam reforming natural gas
as claimed in claim 1, and a steam reformer as claimed in claim 3. Embodiments of
the invention are claimed in the respective dependent claims.
[0011] It is now recognized that the rate of production of ammonia from hydrogen and nitrogen
in the presence of a nickel catalyst increases significantly with temperature, being
only nominal at lower reformer temperatures, such as on the order of 700°F (370°C)
and becoming extensive at temperatures of 1000°F (540°C) - 1300°F (700°C). It is now
also appreciated that the rate of ammonia production is directly affected by the nickel
surface area in the catalyst bed, which is typically formed of nickel dispensed on
a bed of alumina pellets: catalyst beds of less than 10% nickel, even at the higher
temperatures referred to above, do not produce a prohibitive amount of ammonia, whereas
nickel catalyst beds having between 10% and 25% nickel do not produce prohibitive
amounts of ammonia below about 800°F (430°C).
[0012] Portions of the reformer near the inlet, where the temperature is relatively low,
have a higher nickel content, and portions of the reformer which are at greater distances
from the inlet, and therefore at higher temperatures, have catalysts with a lower
nickel content. Furthermore, to extract maximal hydrogen with minimal ammonia being
produced, a small amount of rhodium may be used near the outlet of the reformer. In
one example, a reformer is divided into three portions, an inlet portion having nickel
catalyst of between about 10% nickel and about 25% nickel, a middle portion having
nickel catalyst with a nickel content below about 10%, and an outlet portion having
a relatively low content of rhodium. The arrangement may be modified by having additional
portions, thereby establishing smaller gradations of nickel content in successive
portions of a reformer extending from the inlet thereof.
[0013] Other variations will become more apparent in the light of the following detailed
description of exemplary embodiments, as illustrated in the accompanying drawings.
Brief Description of the Drawings
[0014]
Fig. 1 is a simplified, exemplary block diagram of a system employing a reformer to
provide hydrogen to a fuel cell power plant in which natural gas feedstocks with a
high nitrogen content can be reformed without excessive ammonia production.
Fig. 2 is a partial section of an exemplary tube, a plurality of which may be used
in the reformer of Fig. 1.
Fig. 3 is a simplified line drawing of the tube of Fig. 2, illustrating an exemplary
embodiment of a nickel catalyst reformer which produces only low amounts of ammonia.
Mode(s) of Implementation
[0015] In Fig. 1 , an exemplary system 9 for providing hydrogen to the inlet 10 of the anodes
11 of a fuel cell stack 12, includes a steam reformer 14 which does not generate excessive
ammonia, although it utilizes nickel catalysts and may reform natural gas 15 having
a high nitrogen content.
[0016] The exit 17 of the fuel cell anodes is connected by a suitable conduit 19 to the
inlet 20 of a burner 22 that provides heat to the steam reformer 14. The outlet 25
of the burner 22 is connected to a condenser 26 which cools the burner exhaust (typically
by an ancillary coolant liquid which is cooled in turn by means of a fan using ambient
air) to condense moisture out of the exhaust, the dried gas at the exit 27 of the
condenser being released to ambient 28. The water condensed from the burner exhaust
is provided in a conduit 32 to a reservoir 33.
[0017] Steam for the steam reformer 14 is provided on a conduit 35 from the steam outlet
36 of a separator/accumulator 37, which may comprise a flash drum. The inlet to the
accumulator 37 is a two-phase, hot coolant in a conduit 39 from the outlet 40 of the
coolers 42 in the fuel cell stack 12. The inlet 44 to the coolers is connected to
a conduit 47 to a coolant pump 48 which is connected by a conduit 50 to a liquid outlet
52 of the accumulator 37. The level of liquid in the accumulator 37 is monitored to
control a condensate pump 55 which is connected to a conduit 56 to an outlet 59 of
the condensate reservoir 33. Whenever the liquid level in the accumulator 37 is too
low, the pump 55 will be operated so as to add condensate into the flow of coolant
in the conduit 50, at the inlet to the pump 48.
[0018] The reformate generated in the reformer 14 is provided in a conduit 60 to a shift
converter 62 so as to provide reformate with increased hydrogen content at its exit
63. The hydrogen-rich reformate is applied by a conduit 66 to the inlet 10 of the
anodes 11 in the fuel cell stack 12.
[0019] The steam reformer 14 may typically comprise some number (such as between 15 and
40) of thin vertical tubes having the catalyst beds therein. In one form, the feed
is applied to the catalyst beds at the bottom of the tubes, the flow being upwardly
through the catalyst bed, and then the flow of reformate being returned in an adjacent,
coaxial chamber that allows regeneration of the heat released in the process so as
to provide heat to promote the process as well.
[0020] In Fig. 2, the top end 72 of one such tube 75, shown more simply in Fig. 3, closes
off an outer reaction chamber 78 which is layered with catalysts: nickel, with a concentration
of between about 10% and about 25% in a first stage 80; nickel, with a concentration
of below about 10% in a second stage 81 ; and rhodium, in as low a concentration as
will provide the desired result (typically about 2% or less), in a third stage 82.
[0021] The tube 75 also has a cylindrical inner, reformate return chamber 85, coaxial with
the first, catalyst chamber 78. The upper end of the tube 75 is configured to permit
passage of reformate gas upwardly through a space 88 above the rhodium catalyst 89,
through a screen or wire mesh 90, downwardly through a transition tube 100 and then
upward into a frustoconical chamber 105 and thence down, into the chamber 85.
[0022] At higher temperatures, the reformer reaction takes place very quickly as the feed
stock flows over the external surfaces of the catalyzed, semi-porous, alumina pellets.
Any catalyst disposed on the inner surfaces (e.g., surfaces of pores) will be a waste
of catalyst, and therefore a waste of money. In the case of nickel catalysts, reforming
natural gas containing nitrogen, the presence of catalysts on the internal surfaces
will also increase the undesired production of ammonia while not producing the desired
reformate. In the case of noble metal catalysts, such as rhodium, the presence of
catalysts on the inner surfaces of the pellets is simply a waste of money. Therefore,
pellets with catalysts disposed only the outer surfaces of the pellets should be utilized
when possible. Such catalyzed pellets are available in the market from Johnson Matthey,
made by a proprietary process unknown to applicant.
[0023] Once operation has stabilized, the temperature at the inlet may be between 600°F
(315°C) to 700°F (370°C), the temperature half way up the tube may be on the order
of 900°F (480°C) and the temperature as the gas exits the catalyst in the space 88
may be between about 1200°F (650°C) and about 1300°F (700°C).
[0024] In Figs. 2 and 3, an exemplary steam reformer tube is shown with three stages, all
of about the same length. However, variations may be made in the arrangement, which
in the general case is the provision of reduced nitrogen content along the flow of
the feed stock. This equates to having a lower nickel content as a function of increasing
temperature, which in the example given is not incremental, but achieved in a step
function manner since there are only two stages of nickel catalysts. Two or more stages
of nickel catalyst may be used with or without the stage of rhodium catalyst.
1. A method of steam reforming natural gas comprising flowing natural gas from an inlet
through a catalyst bed formed of a catalyst on alumina pellets, wherein the catalyst
is nickel and the nickel concentration in the catalyst bed decreases in discrete stages
with distance from said inlet,
the method being characterized by flowing natural gas through a first stage having a nickel concentration of between
10% and 25% and through a second stage having a nickel concentration of more than
zero % but less than 10%.
2. The method according to claim 1 further characterized by flowing natural gas through a third stage containing rhodium.
3. A steam reformer having an inlet and a catalyst bed formed of a catalyst on alumina
pellets, wherein the catalyst is nickel and the nickel concentration in the catalyst
bed decreases in discrete stages with distance from said inlet, characterized in that the nickel concentration of a first stage is between 10% and 25%, and the nickel
concentration of a second stage is more than zero % but less than 10%.
4. The steam reformer according to claim 3 further characterized in that there are only two stages of nickel catalyst.
5. The steam reformer according to claim 3 further characterized by said catalyst bed including a stage having an additional catalyst other than nickel.
6. The steam reformer according to claim 5 further characterized in that said additional catalyst is rhodium.
7. The steam reformer according to claim 5 further characterized in that said additional catalyst is farthest from said inlet.
1. Verfahren zur Dampfreformierung von Erdgas, aufweisend ein Strömenlassen von Erdgas
von einem Einlass durch ein Katalysatorbett, das von einem Katalysator auf Aluminiumoxid-Pelletts
gebildet wird, wobei der Katalysator Nickel ist und die Nickel-Konzentration in dem
Katalysatorbett mit dem Abstand von dem Einlass in diskreten Stufen abnimmt,
wobei das Verfahren gekennzeichnet ist durch ein Strömenlassen von Erdgas durch eine erste Stufe mit einer Nickel-Konzentration
von zwischen 10% und 25%, und durch eine zweite Stufe mit einer Nickel-Konzentration von mehr als 0%, aber weniger als
10%.
2. Verfahren nach Anspruch 1, außerdem gekennzeichnet durch ein Strömenlassen von Erdgas durch eine dritte Stufe, die Rhodium enthält.
3. Dampfreformer mit einem Einlass und einem Katalysatorbett, das von einem Katalysator
auf Aluminiumoxid-Pellets gebildet wird, wobei der Katalysator Nickel ist und die
Nickel-Konzentration in dem Katalysatorbett mit dem Abstand von dem Einlass in diskreten
Stufen abnimmt,
dadurch gekennzeichnet, dass die Nickel-Konzentration einer ersten Stufe zwischen 10% und 25% beträgt, und die
Nickel-Konzentration einer zweiten Stufe größer als 0%, aber geringer als 10% ist.
4. Dampfreformer nach Anspruch 3, außerdem dadurch gekennzeichnet, dass es nur zwei Nickelkatalysator-Stufen gibt.
5. Dampfreformer nach Anspruch 3, außerdem dadurch gekennzeichnet, dass das Katalysatorbett eine Stufe mit einem zusätzlichen, von Nickel verschiedenen Katalysator
enthält.
6. Dampfreformer nach Anspruch 5, außerdem dadurch gekennzeichnet, dass der zusätzliche Katalysator Rhodium ist.
7. Dampfreformer nach Anspruch 5, außerdem dadurch gekennzeichnet, dass der zusätzliche Katalysator von dem Einlass am weitesten weg ist.
1. Procédé de reformage de gaz naturel à la vapeur comprenant l'écoulement du gaz naturel
à partir d'une entrée à travers un lit catalytique formé par un catalyseur sur des
pastilles d'alumine, le catalyseur représentant du nickel et la concentration du nickel
dans le lit catalytique diminuant par paliers discrets de manière proportionnelle
à la distance par rapport à ladite entrée, le procédé étant caractérisé par un écoulement du gaz naturel à travers un premier étage possédant une concentration
de nickel entre 10 % et 25 % et à travers un deuxième étage possédant une concentration
de nickel supérieure à 0 %, mais inférieure à 10 %.
2. Procédé selon la revendication 1, caractérisé en outre par un écoulement du gaz naturel à travers un troisième étage contenant du rhodium.
3. Dispositif de reformage à la vapeur comprenant une entrée et un lit catalytique formé
par un catalyseur sur des pastilles d'alumine, le catalyseur représentant du nickel
et la concentration du nickel dans le lit catalytique diminuant par paliers discrets
de manière proportionnelle à la distance par rapport à ladite entrée, caractérisé en ce que la concentration du nickel d'un premier étage se situe entre 10 % et 25 % et la concentration
du nickel à un deuxième étage est supérieure à 0 %, mais inférieure à 10 %.
4. Dispositif de reformage à la vapeur selon la revendication 3, caractérisé en outre en ce qu'on prévoit seulement deux étages de catalyseur à base de nickel.
5. Dispositif de reformage à la vapeur selon la revendication 3, caractérisé en outre par le fait que ledit lit catalytique englobe un étage possédant un catalyseur supplémentaire autre
que le nickel.
6. Dispositif de reformage à la vapeur selon la revendication 5, caractérisé en outre en ce que ledit catalyseur supplémentaire est le rhodium.
7. Dispositif de reformage à la vapeur selon la revendication 5, caractérisé en outre en ce que ledit catalyseur supplémentaire est celui qui est le plus éloigné de ladite entrée.